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Topography Dependence of Terrestrial Litter-Derived Soil Respiration
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DOI:10.1111/gcb.71011.png)
Abstract
En 中文
Carbon (C) released from decomposing plant litter constitutes a major component of soil CO2 efflux at the land surface, yet its contribution is rarely constrained separately from heterotrophic respiration of stable soil organic matter in global C budgets and Earth system model evaluations. We combined a global dataset with high-resolution field observations to quantify the contribution of litter-derived soil respiration (Rs) using litter-input and litter-removal experiments, and to project its current distribution and future dynamics with machine-learning models. On average, litter-derived Rs accounted for 30.9% of total Rs. Higher contributions were estimated for experiments of shorter duration, highlighting the important role of fast-cycling C alongside soil organic matter turnover. Litter-derived Rs varied substantially among ecosystems (grasslands > croplands > forests > wetlands) but did not differ significantly between tropical and temperate climates. Land surface slope exerted a stronger control than climatic or edaphic factors across both mountain and non-mountain regions, suggesting a pronounced topographic regulation. High-frequency field measurements further confirmed this pattern, with litter-derived Rs at mountain ridges being 1.5 times that in valleys. Global projections indicated a higher litter-derived Rs at low latitudes and greater vulnerability in cold climates under SSP 1–2.6 and SSP 5–8.5 scenarios. These findings demonstrate that litter decomposition is a substantial source of soil CO2 flux that is strongly controlled by terrain. Accounting for this CO2 pathway improves our understanding of how landscape heterogeneity influences terrestrial C cycle and enhances future predictions of ecosystem responses to climate change.
Keywords:
carbon budget
climate change
heterotrophic respiration
litter decomposition
soil respiration
topography
Journal
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12
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8.9K
Citations:
7.6W
